Please use this identifier to cite or link to this item: https://hdl.handle.net/2440/132760
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Type: Journal article
Title: Atomic interface engineering and electric-field effect in ultrathin Bi₂MoO₆ nanosheets for superior lithium ion storage
Other Titles: Atomic interface engineering and electric-field effect in ultrathin Bi(2)MoO(6) nanosheets for superior lithium ion storage
Author: Zheng, Y.
Zhou, T.
Zhao, X.
Pang, W.K.
Gao, H.
Li, S.
Zhou, Z.
Liu, H.
Guo, Z.
Citation: Advanced Materials, 2017; 29(26):1700396-1-1700396-8
Publisher: Wiley
Issue Date: 2017
ISSN: 0935-9648
1521-4095
Statement of
Responsibility: 
Yang Zheng, Tengfei Zhou, Xudong Zhao, Wei Kong Pang, Hong Gao, Sean Li ... et al.
Abstract: Ultrathin 2D materials can offer promising opportunities for exploring advanced energy storage systems, with satisfactory electrochemical performance. Engineering atomic interfaces by stacking 2D crystals holds huge potential for tuning material properties at the atomic level, owing to the strong layer-layer interactions, enabling unprecedented physical properties. In this work, atomically thin Bi<sub>2</sub> MoO<sub>6</sub> sheets are acquired that exhibit remarkable high-rate cycling performance in Li-ion batteries, which can be ascribed to the interlayer coupling effect, as well as the 2D configuration and intrinsic structural stability. The unbalanced charge distribution occurs within the crystal and induces built-in electric fields, significantly boosting lithium ion transfer dynamics, while the extra charge transport channels generated on the open surfaces further promote charge transport. The in situ synchrotron X-ray powder diffraction results confirm the material's excellent structural stability. This work provides some insights for designing high-performance electrode materials for energy storage by manipulating the interface interaction and electronic structure.
Keywords: Bi2MoO6
atomic interfaces
electric field
lithium-ion batteries
ultrathin sheets
Rights: © 2017 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
DOI: 10.1002/adma.201700396
Published version: http://dx.doi.org/10.1002/adma.201700396
Appears in Collections:Physics publications

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